SapC-DOPS nanovesicles induce Smac- and Bax-dependent apoptosis through mitochondrial activation in neuroblastomas

Mahaboob K Sulaiman1, Zhengtao Chu2,3, Victor M Blanco4

  • 1Division of Hematology and Oncology, Department of Internal Medicine, University of Cincinnati College of Medicine, Cincinnati, Ohio, USA. khan_mahaboob@yahoo.com.

Molecular Cancer
|April 19, 2015
PubMed
Abstract

Insights

SapC-DOPS nanovesicles effectively target and suppress neuroblastoma growth by inducing apoptosis through a mitochondria-mediated pathway. This novel approach shows promise for neuroblastoma therapy and imaging.

Area of Science:

  • Nanomedicine
  • Cancer Biology
  • Molecular Mechanisms

Background:

  • Chemotherapy for neuroblastoma is limited by toxicity and secondary malignancies.
  • Nanovesicles offer potential for cancer imaging and treatment.
  • SapC-DOPS nanovesicles target cancer cells via surface phosphatidylserine.

Purpose of the Study:

  • To evaluate the efficacy of SapC-DOPS in targeting and suppressing neuroblastoma growth.
  • To elucidate the molecular mechanisms of SapC-DOPS action in neuroblastoma.

Main Methods:

  • In vivo targeting and therapeutic efficacy assessment in neuroblastoma xenograft mice.
  • In vitro analysis of apoptosis induction, including mitochondrial membrane potential, DNA fragmentation, and protein expression (Smac, Bax, Cytochrome c, Caspase-3).

Main Results:

  • SapC-DOPS specifically targeted and inhibited neuroblastoma xenografts in mice.
  • In vitro, SapC-DOPS induced apoptosis via mitochondrial pathway, involving Smac and Bax.
  • Mitochondrial membrane potential loss is critical for SapC-DOPS activity.

Conclusions:

  • SapC-DOPS induces apoptosis in neuroblastoma through a mitochondria-mediated pathway.
  • SapC-DOPS demonstrates tumor-targeting capacity and anticancer efficacy.
  • SapC-DOPS holds potential as a dual imaging and therapeutic agent for neuroblastoma.